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Volume 10 Issue 2
Mar.  1988
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Chen Zenggui. THEORY AND NUMERICAL SIMULATION OF BEAM-WAVE INTERACTION OF THE GYRO-PENIOTRON[J]. Journal of Electronics & Information Technology, 1988, 10(2): 113-119.
Citation: Chen Zenggui. THEORY AND NUMERICAL SIMULATION OF BEAM-WAVE INTERACTION OF THE GYRO-PENIOTRON[J]. Journal of Electronics & Information Technology, 1988, 10(2): 113-119.

THEORY AND NUMERICAL SIMULATION OF BEAM-WAVE INTERACTION OF THE GYRO-PENIOTRON

  • Received Date: 1986-08-01
  • Rev Recd Date: 1986-12-29
  • Publish Date: 1988-03-19
  • Starting from the relativistic motion equation and the energy equation of the electron, a large-signal theory which describes the beam-wave interaction of the gyro-peniotron for arbitrary TEmn mode and arbitrary harmonic of the cyclotron frequency is presented. Numerical simulation shows that under defined conditions an electronic efficiency of about 45% for the third cyclotron harmonic at an operation frequency of 35 GHz could be obtained, while the required DC magnetic field is only 4.2 kGs. This fact indicates that this device could be efficiently operated at high efficiency and low magnetic field. Therefore, the practical application of the gyro-device will be greatly exended and the potential for sort-millimeter and sub-millimeter wavelength exists.
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  • S. Ono, K. Tsmaki, T. Kageyama, Proposing the Gyro-Peniotron with its Operation Analysis, IEDM Technical Digest, (1983), p.456.[2]S. Ono, K. Tustaki, T. Kageyama, Operation Analysis of the Gyro-Peniotron, 9th Int. Conf. on Infrared and Millimeter Waves, Japan, (1984), p164.[3]P. Vitello, W. Miner and A.T. Drobot, IEEE Trans. on MTT, MTT-32(1984), 373.[4]P.Vitello, High Harmonic Gyro-Peniotron Oscillator, 9th Int. Conf. on Infrared and Millimeter Waves, Japan, (1984), p162.[5]H. Dring and Yu Wei, Int. J. Infrared and Millimeter Waves, 2(1982), 437.[6]Zenggui, Chen, Int. J. Infrared and Millimeter Waves., 5(1984), 73.
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